Enzyme-catalyzed acylation of homoserine:: Mechanistic characterization of the Haemophilus influenzae met2-encoded homoserine transacetylase

被引:36
作者
Born, TL [1 ]
Franklin, M [1 ]
Blanchard, JS [1 ]
机构
[1] Albert Einstein Coll Med, Dept Biochem, Bronx, NY 10461 USA
关键词
D O I
10.1021/bi000462p
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The first unique step in bacterial and plant methionine biosynthesis involves the acylation of the gamma-hydroxyl of homoserine. In Haemophilus influenzae, acylation is accomplished via an acetyl-CoA-dependent acetylation catalyzed by homoserine transacetylase. The activity of this enzyme regulates flux of homoserine into multiple biosynthetic pathways and, therefore, represents a critical control point for cell growth and viability. We have cloned homoserine transacetylase from PI. influenzae and present the first detailed enzymatic study of this enzyme. Steady-state kinetic experiments demonstrate that the enzyme utilizes a ping-pong kinetic mechanism in which the acetyl group of acetyl-CoA is initially transferred to an enzyme nucleophile before subsequent transfer to homoserine to form the final product, O-acetylhomoserine. The maximal velocity and V/K-homoserine were independent of pH over the range of values tested, while V/Kacetyl-CoA was dependent upon the ionization state of a single group exhibiting a pK value of 8.6, which was required to be protonated. Solvent kinetic isotope effect studies yielded inverse effects of 0.75 on V and 0.74 on V/K-CoA on the reverse reaction and effects of 1.2 on V and 1.7 on V/K-homoserine on the forward reaction. Direct evidence for the formation of an acetyl-enzyme intermediate was obtained using rapid-quench labeling studies. On the basis of these observations, we propose a chemical mechanism for this important member of the acyltransferase family and contrast its mechanism with that of homoserine transsuccinylase.
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页码:8556 / 8564
页数:9
相关论文
共 41 条
[21]   MICROSOMAL AND SOLUBLE EPOXIDE HYDROLASES ARE MEMBERS OF THE SAME FAMILY OF C-X BOND HYDROLASE ENZYMES [J].
LACOURCIERE, GM ;
ARMSTRONG, RN .
CHEMICAL RESEARCH IN TOXICOLOGY, 1994, 7 (02) :121-124
[22]   THE MET2 GENE OF SACCHAROMYCES-CEREVISIAE - MOLECULAR-CLONING AND NUCLEOTIDE-SEQUENCE [J].
LANGIN, T ;
FAUGERON, G ;
GOYON, C ;
NICOLAS, A ;
ROSSIGNOL, JL .
GENE, 1986, 49 (03) :283-293
[23]  
LEE LW, 1966, J BIOL CHEM, V241, P5479
[24]   KINETIC MECHANISM OF SERINE TRANSACETYLASE FROM SALMONELLA-TYPHIMURIUM [J].
LEU, LS ;
COOK, PF .
BIOCHEMISTRY, 1994, 33 (09) :2667-2671
[25]   REGULATION OF THE SALMONELLA-TYPHIMURIUM META GENE BY THE METR PROTEIN AND HOMOCYSTEINE [J].
MARES, R ;
URBANOWSKI, ML ;
STAUFFER, GV .
JOURNAL OF BACTERIOLOGY, 1992, 174 (02) :390-397
[26]   ESSENTIAL ACTIVE-SITE HISTIDINE RESIDUE IN HUMAN PROSTATIC ACID-PHOSPHATASE - ETHOXYFORMYLATION BY DIETHYL PYROCARBONATE AND PHOSPHORYLATION BY A SUBSTRATE [J].
MCTIGUE, JJ ;
VANETTEN, RL .
BIOCHIMICA ET BIOPHYSICA ACTA, 1978, 523 (02) :407-421
[27]  
MICHAELI S, 1984, FEMS MICROBIOL LETT, V23, P125
[28]   REGULATION OF ASPARTATE FAMILY AMINO-ACID BIOSYNTHESIS IN BREVIBACTERIUM-FLAVUM .7. PROPERTIES OF HOMOSERINE O-TRANSACETYLASE [J].
MIYAJIMA, R ;
SHIIO, I .
JOURNAL OF BIOCHEMISTRY, 1973, 73 (05) :1061-1068
[29]  
Nagai S, 1971, METHODS ENZYMOLOGY B, V17B, P423
[30]   Evidence for lateral gene transfer between Archaea and Bacteria from genome sequence of Thermotoga maritima [J].
Nelson, KE ;
Clayton, RA ;
Gill, SR ;
Gwinn, ML ;
Dodson, RJ ;
Haft, DH ;
Hickey, EK ;
Peterson, LD ;
Nelson, WC ;
Ketchum, KA ;
McDonald, L ;
Utterback, TR ;
Malek, JA ;
Linher, KD ;
Garrett, MM ;
Stewart, AM ;
Cotton, MD ;
Pratt, MS ;
Phillips, CA ;
Richardson, D ;
Heidelberg, J ;
Sutton, GG ;
Fleischmann, RD ;
Eisen, JA ;
White, O ;
Salzberg, SL ;
Smith, HO ;
Venter, JC ;
Fraser, CM .
NATURE, 1999, 399 (6734) :323-329